IP Library › Granted Patent US 12,603,622
Granted Patent B2
US 12,603,622 · App. 18/049,046 · Granted Apr 14, 2026

Apparatus and methods for radio frequency amplifiers

Inventors: Noureddine Outaleb (Ottawa, CA); Mohamed Weheiba (Cairo, EG)
Assignee: ANALOG DEVICES INTERNATIONAL UNLIMITED COMPANY
H03F3/45179H01Q3/36H03F2200/06H03F2200/09H03F2200/294H03F2200/451H03F2200/541H03F2203/45024
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Quick Facts
Patent No.
US 12,603,622
App. No.
18/049,046
Granted
Apr 14, 2026
Kind
B2
Abstract

Apparatus and methods for radio frequency (RF) amplification are disclosed. In certain embodiments, an RF amplifier includes an output node configured to output an RF output signal, a main amplifier stage including a differential output, a first differential balun combiner configured to provide a first single-ended RF signal to the output node based on combining a first differential RF signal from the differential output of the main amplifier stage, an auxiliary amplifier stage including a differential output, a transformer component, and a second differential balun combiner configured to generate a second single-ended RF signal based on combining a second differential RF signal from the differential output of the auxiliary amplifier stage. The second differential balun combiner provides the second single-ended RF signal to the output node through the transformer component.

Claims (38)

1 . A radio frequency (RF) amplifier comprising:

an output node configured to output an RF output signal;

a main amplifier stage including a differential output;

a first differential balun combiner configured to provide a first single-ended RF signal to the output node and to receive a first differential RF signal from the differential output of the main amplifier stage, wherein the first differential balun combiner absorbs an output matching network of the main amplifier stage;

an auxiliary amplifier stage including a differential output, a first cascode transistor, and a second cascode transistor;

a transformer component; and

a second differential balun combiner configured to generate a second single-ended RF signal and to receive a second differential RF signal from the differential output of the auxiliary amplifier stage, and to provide the second single-ended RF signal to the output node through the transformer component, the second differential balun combiner including a first conductor directly connected between a drain of the first cascode transistor and a drain of the second cascode transistor, wherein the second differential balun combiner absorbs an output matching network of the first cascode transistor and the second cascode transistor of the auxiliary amplifier stage.

2 . The RF amplifier of claim 1 , wherein the transformer component is a quarter wave length transformer.

3 . The RF amplifier of claim 1 , wherein the RF amplifier further comprises a first pair of driver amplifiers configured to drive a non-inverted input and an inverted input of the main amplifier stage, and a second pair of driver amplifiers configured to drive a non-inverted input and an inverted input of the auxiliary amplifier stage.

4 . The RF amplifier of claim 1 , wherein the first differential balun combiner and the second differential balun combiner are each implemented as a lumped element balun.

5 . The RF amplifier of claim 1 , wherein the auxiliary amplifier stage further includes a first common source transistor, a third cascode transistor connected between a drain of the first common source transistor and a source of the first cascode transistor, a second common source transistor, and a fourth cascode transistor connected between a drain of the second common source transistor and a source of the second cascode transistor.

6 . The RF amplifier of claim 5 further comprising a first input balun configured to provide a first differential RF input signal to the main amplifier stage, and a second input balun configured to provide a second differential RF input signal to the auxiliary amplifier stage, the second differential RF input signal provided between a gate of the first common source transistor and a gate of the second common source transistor.

7 . The RF amplifier of claim 6 , further comprising an input node directly connected to an input of the second input balun and an input transformer component directly connected between the input node and an input of the first input balun.

8 . The RF amplifier of claim 1 , wherein the transformer component and a second conductor of the second differential balun combiner are directly connected in series between the output node and a ground voltage with no intervening components.

9 . A front end system for controlling beamforming in an active scanned electronically steered array, the front end system comprising:

a phase shifter configured to control a phase of a radio frequency (RF) input signal; and

an RF amplifier in series with the phase shifter and configured to amplify the RF input signal to generate an RF output signal at an output node, wherein the RF amplifier comprises:

a main amplifier stage including a differential output;

a first differential balun combiner configured to provide a first single-ended RF signal to the output node and to receive a first differential RF signal from the differential output of the main amplifier stage, wherein the first differential balun combiner absorbs an output matching network of the main amplifier stage;

an auxiliary amplifier stage including a differential output, a first cascode transistor, and a second cascode transistor;

a transformer component; and

a second differential balun combiner configured to generate a second single-ended RF signal and to receive a second differential RF signal from the differential output of the auxiliary amplifier stage, and to provide the second single-ended RF signal to the output node through the transformer component, the second differential balun combiner including a first conductor directly connected between a drain of the first cascode transistor and a drain of the second cascode transistor, wherein the second differential balun combiner absorbs an output matching network of the first cascode transistor and the second cascode transistor of the auxiliary amplifier stage.

10 . The front end system of claim 9 , wherein the RF amplifier further comprises a first pair of driver amplifiers configured to drive a non-inverted input and an inverted input of the main amplifier stage, and a second pair of driver amplifiers configured to drive a non-inverted input and an inverted input of the auxiliary amplifier stage.

11 . The front end system of claim 9 , wherein the first differential balun combiner and the second differential balun combiner are each implemented as a lumped element balun.

12 . The front end system of claim 9 , wherein the auxiliary amplifier stage further includes a first common source transistor, a third cascode transistor connected between a drain of the first common source transistor and a source of the first cascode transistor, a second common source transistor, and a fourth cascode transistor connected between a drain of the second common source transistor and a source of the second cascode transistor.

13 . The front end system of claim 12 , further comprising a first input balun configured to provide a first differential RF input signal to the main amplifier, and a second input balun configured to provide a second differential RF input signal to the auxiliary amplifier, the second differential RF input signal provided between a gate of the first common source transistor and a gate of the second common source transistor.

14 . The front end system of claim 13 , further comprising an input node directly connected to an input of the second input balun and configured to receive the RF input signal, and an input transformer component directly connected between the input node and an input of the first input balun.

15 . The front end system of claim 9 , wherein the transformer component and a second conductor of the second differential balun combiner are directly connected in series between the output node and a ground voltage with no intervening components.

16 . A method of radio frequency (RF) signal amplification, the method comprising:

amplifying a first differential RF input signal to generate a first differential RF signal using a main amplifier stage;

providing a first single-ended RF signal from a first differential balun combiner to an output node and receiving the first differential RF signal at the first differential balun combiner, wherein the first differential balun combiner absorbs an output matching network of the main amplifier stage;

amplifying a second differential RF input signal to generate a second differential RF signal using an auxiliary amplifier stage that includes a first cascode transistor and a second cascode transistor;

outputting a second single-ended RF signal from a second differential balun combiner and receiving the second differential RF signal at the second differential balun combiner, the second differential balun combiner including a first conductor directly connected between a drain of the first cascode transistor and a drain of the second cascode transistor, wherein the second differential balun combiner absorbs an output matching network of the first cascode transistor and the second cascode transistor of the auxiliary amplifier stage; and

providing the second single-ended RF signal to the output node through a transformer component.

17 . The method of claim 16 , further comprising providing the first differential RF input signal to the main amplifier from a first pair of driver amplifiers, and providing the second differential RF input signal to the auxiliary amplifier from a second pair of driver amplifiers.

18 . The method of claim 16 , wherein the first differential balun combiner and the second differential balun combiner are each implemented as a lumped element balun.

19 . The method of claim 16 , wherein the auxiliary amplifier stage further includes a first common source transistor, a third cascode transistor connected between a drain of the first common source transistor and a source of the first cascode transistor, a second common source transistor, and a fourth cascode transistor connected between a drain of the second common source transistor and a source of the second cascode transistor, the method further comprising providing the first differential RF input signal to the main amplifier from a first input balun, and providing the second differential RF input signal to the auxiliary amplifier from a second input balun, the second differential RF input signal provided between a gate of the first common source transistor and a gate of the second common source transistor.

20 . The method of claim 16 , wherein the transformer component and a second conductor of the second differential balun combiner are directly connected in series between the output node and a ground voltage with no intervening components.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 24, 2022
From: OUTALEB, NOUREDDINE; WEHEIBA, MOHAMED
To: ANALOG DEVICES INTERNATIONAL UNLIMITED COMPANY
Reel/Frame 061518/0528 →
Continuity (2)
Provisional Application 63263306 · Oct 29, 2021
Related Publication 20230134681A1 · May 4, 2023
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